[1]鲁如坤. 土壤植物营养学原理和施肥[M]. 北京:化学工业出版社, 1998:152-157. [2]鲁如坤, 时正元. 土壤积累态磷研究—Ⅱ. 磷肥的表观积累利用率[J]. 土壤, 1995, 27(6):286-289. [3] Tripura C, Sashidhar B, Podile AR. Ethyl methane sulfonate mutage-nesis-enhanced mineral phosphate solubilization by groundnut-asso-ciated Serratia marcescens GPS-5[J]. Current Microbiology, 2007, 54(2):79-84. [4]Reyes I, Valery A, Valduz Z. Phosphate-solubilizing microorganisms isolated from rhizospheric and bulk soils of colonizer plants at an abandoned rock phosphate mine[C]. First international meeting on microbial phosphate solubilization. Springer Netherlands, 2007:69-75. [5]Illmer P, Schinner F. Solubilization of inorganic phosphates by microorganisms isolated from forest soils[J]. Soil Biology and Biochemistry, 1992, 24(4):389-395. [6]Goldstein AH. Bacterial solubilization of mineral phosphates:historical perspective and future prospects[J]. American Journal of Alternative Agriculture, 1986, 1(2):51-57. [7]Liu FP, Liu H Q, Zhou HL, et al. Isolation and characterization of phosphate-solubilizing bacteria from betel nut(Areca catechu)and their effects on plant growth and phosphorus mobilization in tropical soils[J]. Biology and Fertility of Soils, 2041, 50:927-937. [8]Jiao R, Peng Y. Preliminary Study on Phosphate Solubilization and K-releasing Abilities of Rhizobium tropici Martinez-Romero et al. Strains from Woody Legumes[C]//Proceedings of the 19th World Congress of Soil Science:Soil solutions for a changing world, Brisbane, Australia, 1-6 August 2010. International Union of Soil Sciences(IUSS), c/o Institut für Bodenforschung, Universit?t für Bodenkultur, 2010:104-107. [9] 吴翔, 甘炳成, 贾定洪, 等. 一株自生固氮细菌的分离和鉴定[J]. 西南农业学报, 2013(1):255-258. [10]别运清, 胡正嘉. 硅酸盐细菌几种功能的研究[J]. 襄樊职业技术学院学报, 2002, 1(1):12-15. [11]Piromyou P, Buranabanyat B, Tantasawat P, et al. Effect of plant growth promoting rhizobacteria(PGPR)inoculation on microbial community structure in rhizosphere of forage corn cultivated in Thailand[J]. European Journal of Soil Biology, 2011, 47(1):44-54. [12]荣良燕, 姚拓, 赵桂琴, 等. 产铁载体PGPR菌筛选及其对病原菌的拮抗作用[J]. 植物保护, 2011, 37(1):59-64. [13]南京农业大学. 土壤农化分析[M]. 第2 版. 北京:中国农业出版社, 1996:311-312. [14]鲁如坤. 土壤农业化学分析方法[M]. 北京:中国土壤学会:中国农业科技出版社, 2000:179-183. [15]姚拓. 高寒地区燕麦根际联合固氮菌研究Ⅱ固氮菌的溶磷性和分泌植物生长素特性测定[J]. 草业学报, 2004, 13(3):85-90. [16]Hu XJ, Li ZJ, Cao YC, et al. Isolation and identification of a phosphate-solubilizing bacterium Pantoea stewartii subsp. stewartii g6, and effects of temperature, salinity, and pH on its growth under indoor culture conditions[J]. Aquaculture International, 2010, 18(6):1079-1091. [17] 冯静, 施庆珊, 欧阳友生, 等. 葡糖醋杆菌的研究进展[J]. 化学与生物工程, 2009, 26(5):10-13. [18] Chen YP, Rekha PD, Arun AB, et al. Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities[J]. Applied Soil Ecology, 2006, 34(1):33-41. [19] Park JH, Bolan N, Megharaj M, et al. Isolation of phosphate solubi-lizing bacteria and their potential for lead immobilization in soil[J]. Journal of Hazardous Materials, 2011, 185(2):829-836. [20] Linu MS, Stephen J, Jisha MS. Phosphate Solubilizing Gluconacet-obacter sp., Burkholderia sp. and their Potential Interaction with Cowpea(Vigna unguiculata(L. )Walp. )[J]. International Journal of Agricultural Research, 2009, 4(2):79-87. [21]Gillis M, Kersters K, Hoste B, et al. Acetobacter diazotrophicus sp. nov., a nitrogen-fixing acetic acid bacterium associated with sugar-cane[J]. International Journal of Systematic Bacteriology, 1989, 39(3):361-364. [22] Muthukumarasamy R, Govindarajan M, Vadivelu M, et al. N-fertil-izer saving by the inoculation of Gluconacetobacter diazotrophicus and Herbaspirillum sp. in micropropagated sugarcane plants[J]. Microbiological Research, 2006, 161(3):238-245. [23] 吴海燕, 金荣德, 范作伟, 等. 解磷巨大芽孢杆菌(Bacillusm-egaterium)的溶磷机理探讨[J]. 吉林农业大学学报, 2014, 36(2):171-175. [24] 赵小蓉, 林启美, 李保国. 微生物溶解磷矿粉能力与pH及分泌有机酸的关系[J]. 微生物学杂志, 2003, 23(3):5-7. [25] Deubel A, Gransee A, Merbach W. Transformation of organic rhizodeposits by rhizoplane bacteria and its influence on the availability of tertiary calcium phosphate[J]. Journal of Plant Nutrition and Soil Science, 2000, 163:387-392. [26] Goldstein AH. Recent progress in understanding the molecular genetics and biochemistry of calcium phosphate solubilization by gram negative bacteria[J]. Biological Agriculture & Horticulture, 1995, 12(2):185-193. [27] Rodriguez H, Gonzalez T, Goire I, et al. Gluconic acid production and phosphate solubilization by the plant growth-promoting bacterium Azospirillum spp[J]. Naturwissenschaften, 2004, 91(11):552-555. [28] Hameeda B, Reddy Y H K, Rupela O P, et al. Effect of carbon substrates on rock phosphate solubilization by bacteria from composts and macrofauna[J]. Current Microbiology, 2006, 53(4):298-302. [29] Chen Z, Ma S, Liu LL. Studies on phosphorus solubilizing activity of a strain of phosphobacteria isolated from chestnut type soil in China[J]. Bioresource Technology, 2008, 99(14):6702-6707. [30] Schoebitz M, Ceballos C, Ciamp L. Effect of immobilized phosphate solubilizing bacteria on wheat growth and phosphate uptake[J]. Journal of Soil Science and Plant Nutrition, 2013, 13(1):1-10. [31] 邵玉芳, 樊明寿, 乌恩, 等. 植物根际解磷细菌与植物生长发育[J]. 中国农学通报, 2007, 23(4):241-244. [32] 齐海季, 梁林洲, 赵学强, 等. 土壤磷含量对黄瓜幼苗生长和磷素吸收的影响[J]. 江苏农业科学, 2012, 40(1):152-154. |